Wind-envelope interaction as the origin of the slow cyclic brightness variations of luminous blue variables
arXiv:2012.00023 · doi:10.1051/0004-6361/202038298
Abstract
Luminous blue variables (LBVs) are hot, very luminous massive stars displaying large quasi-periodic variations in brightness, radius,and photospheric temperature, on timescales of years to decades. The physical origin of this variability, called S Doradus cycle after its prototype, has remained elusive. Here, we study the feedback of stellar wind mass-loss on the envelope structure in stars near the Eddington limit. We perform a time-dependent hydrodynamic stellar evolutionary calculation, applying a stellar wind mass-loss prescription with a temperature-dependence inspired by the predicted systematic increase in mass-loss rates below 25 kK. We find that when the wind mass-loss rate crosses a well-defined threshold, a discontinuous change in the wind base conditions leads to a restructuring of the stellar envelope. The induced drastic radius and temperature changes, which occur on the thermal timescale of the inflated envelope, impose in turn mass-loss variations that reverse the initial changes, leading to a cycle that lacks a stationary equilibrium configuration. Our proof-of-concept model broadly reproduces the typical observational phenomenology of the S Doradus variability. We identify three key physical ingredients needed to trigger the instability: inflated envelopes in close proximity to the Eddington limit, a temperature range where decreasing opacities do not lead to an accelerating outflow, and a mass-loss rate that increases with decreasing temperature, crossing a critical threshold value within this temperature range. Our scenario and model provide testable predictions, and open the door for a consistent theoretical treatment of the LBV phase in stellar evolution, with consequences for their further evolution as single stars or in binary systems.
A&A Accepted, 14 pages, many colorful figures
References in corpus (19)
- Pre-Supernova Evolution of Massive Single and Binary Stars
- Mass loss from hot massive stars
- A giant outburst two years before the core-collapse of a massive star
- Mass loss from late-type WN stars and its Z-dependence: very massive stars approaching the Eddington limit
- Bright OB stars in the Galaxy IV. Stellar and wind parameters of early to late B supergiants
- Luminous Blue Variables as the progenitors of supernovae with quasi-periodic radio modulations
- The IACOB project: III. New observational clues to understand macroturbulent broadening in massive O- and B-type stars
- Statistical properties of a sample of periodically variable B-type supergiants - Evidence for opacity-driven gravity-mode oscillations
- Gamma-ray burst progenitors
- The metallicity dependence of envelope inflation in massive stars
- New predictions for radiation-driven, steady-state mass-loss and wind-momentum from hot, massive stars. I. Method and first results
- Binary population synthesis models for core-collapse gamma-ray burst progenitors
- Theoretical wind clumping predictions of OB supergiants from line-driven instability simulations across the bi-stability jump
- On the H Behaviour of Blue Supergiants: Rise and Fall over the Bi-stability Jump
- New Luminous Blue Variables in the Andromeda galaxy
- A new and unusual LBV-like outburst from a Wolf-Rayet star in the outskirts of M33
- The Herschel view of the nebula around the luminous blue variable star AG Carinae
- Centrifugally Driven Mass Loss and Outbursts of Massive Stars
- The Wolf-Rayet Stellar Response To The Iron Opacity Bump: Envelope Inflation, Winds, and Microturbulence
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